Document BRkwmx2MRdBVNwxNOy2kK846J
American Society of Heating, and Ventilating Engineers Guide, 1925-26
Table 29. Heat Emission of Direct Pipe Coil Radiation for Steam
Steam Temperature at 240 deg. fahr.--Pressure 10 lb. per sq. in.--Room Temperature at 00 deg. fahr.
WALL COILS--Coils Placed Vertical--Pipes Horizontal
B.t.u. per Lineal Ft. of Coil per Hour. (Not Lineal Ft. of Pipe.)
Size of Coil
l'
Single Row. ............................
175
Two. ......................................
335
Four..........................................
584
Six..............................................
752
Eight......................................... ............ 864
Ten............................................
970
Twelve...............;......................
1075
IK'
215 ' 413 724 930 1064 1200 1330
IX'
245 462 816 1050 1200 1350 1500
WALL COILS--Coils Placed Vertical--Pipes Vertical
Emission varies in inverse rati6 of the height of the coil. Use 133 B.t.u. per lineal ft. of pipe as an average for IK in. coil, 10 ft. high.
CEILING COILS--Coils Placed Horizontal--Pipes Horizontal
Emission is equal to that of a single row coil. Allowance must bemade however,if the coil is at the ceiling in a higher temperature.
In this case use 167 B.t.u. per lineal ft. of pipe for 1 in. coils.
206 " u
" " " " 8 \M in. coils.
231 " "
" " " " " VA in. coils.
Note.--This Table has been developed by a method of deduction from the available data on such
experimental work on pipe coils as has been recorded, and does not represent definite results of tests as in Tables 17 to 30. The values are therefore approximate only but can be used with assurance that they are more accurate than those obtained by the usual method for calculating pipe coil surface.
Table 30. Heat Emission of Direct Pipe Coil Radiation for Hot-Water Water Temperature at 180 deg. fahr. Room Temperature at 60 deg. fahr.
WALL COILS--Coils Placed Vertical--Pipes Horizontal
B.t.u. per Lineal Ft. of Coil per Hour. (Not Lineal Ft. of Pipe. )
Size of Coil
Single Row............................. ....... Two.......................................... ....... Four......................................... ........ Six............................................ ....... Eight. ..................................... ........ Ten.............................. ;........... ........ Twelve..................................... .....
l'
105 198 352 456 520 583 \ 645
IK' IK'
131 147 248 276 432 488 558 630 640 720 720 810 800 . 900
WALL COILS--Coils Placed Vertical--Pipes Vertical
Emission varies in inverse ratio to the height of coil. Use 80 B.t.u. per lineal ft. of pipe as an average for 1K in. Coil 10 ft. high.
CEILING COILS--Coils Placed Horizontal--Pipes Horizontal
Emission is equal to that of a single row. coil.
Allowance must be made however, if the coil is at the ceiling where the temperature
is higher.
In this case use 100 B.t.u. per lineal ft. of pipe for 1 in. coils.
125 " u
IK in. coils.
138 """""" " IH in. coils.
Note.' Sec note under Ceiling Coils for Steam.
44
American Society of Heating and Ventilating Engineers Guide, 1925-26 '
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RADIATION FOR ROOM TEMPERATURES
The following table from the Establishment of Standard Methods of Proportioning Direct Radiation, by James A. Donnelly'(Transactions,
Vdl. 21, p- 535) gives the proportionate heat losses from buildings, the proportionate transmission from direct radiators, and the proportionate radiation required (with steam at 210 deg.) for various room temper-'
atures, when the outside temperature is zero:
Table 31. Effect of Room Temperature on Heat Loss and Size of Radiator
Room Temperature
Proportionate
Loss in B.t.u.
Difference in Temperature Between Radia
tor and Room
Proportionate Transmission
IN B.T.U.
Room Temperature
Proportionate Surface
Required Sq. Ft.
35 40 45 50 55 - 60 65
70f 75 80 85 90 95 100 105 110 115 120
0.50 0.57 0.64 0.71 0.79 0.86 0.93
l.OOf .1.07 1.14 1.21 1.29 1.36 1.43 1.50 1.57 1.64 1.71
175 170 165 160 155 150 145
140f 135 130 125 120 115 110 105 100 95 90
1.34
1.29 1.24 1.19 1.14 1.09 1.05 l.OOf 0.95 0.91 0.87 0.82
0.78 0.74 0.70 0.66 0.62
0.58
35 40 45 50
55 60 65 70f 75 80 85 90 95 100 105 110
115 120
0.37 0.44 0.52 0.60
0.69 0.78 0.89 l.OOf 1.12
1.26 1.40 1.56 1.74 1.93 2.15 2.39 2.66 2.95
t Standard Conditions.
Assuming' that the rate of
heat loss from a building varies
directly with the difference be
tween the outside temperature
and the building temperature,
and considering the heat,loss
for zero outside, 70 deg. inside
as the standard, or 100 per cent;
the second column shows the
proportionate loss of heat from
a'building when the outside'
temperature is zero, and the
inside temperature is as given
in the first column.
;'
Assuming that the rate of
transmission from a direct radi
ator to the air of a building is in
proportion to their difference in
temperature, with a variation
in the rate of transmission of
2 per cent, greater or less, for
each 10 deg. increase or decrease
in their temperature difference,
and considering 140 deg. differ
ence in temperature (steam
210 deg., building 70 deg.) as
standard, or 100 per cent trans
mission, the second, column
shows the proportionate trans
mission when the difference,in
temperature, is as given in the
first column.'
'
Assuming-that under stand ard conditions of outside tem perature zero, building tempera ture 70 deg., and radiator tem perature 2.10 deg. (or 140 deg. difference between the radiator and room) the amount of radia tion necessary is 100 per cent, the proportionate amounts of radiation given in the second
column are those .necessary to
heat a building to the tempera
tures given in the first column,
when the outside temperature is zero.
* Note.--The amount of surface required for heating fa always obtained by dividing the heat loss from the building by the amount of heat Uansmitted per square foot of radiation. Therefore, as may be seen from the above tables, the proportionate'amount of surface required for heating is obtained by dividing
the proportionate heat loss from the building by the proportionate transmission of the radiator, in each case.
The preceding table may be used to find the proportionate amount of radiation necessary , to heat a room to any desired.-inside temperature, other than 70 deg., when the outside-minimum temperature is other than
zero, and with "a radiator temperature other than standard.: Find the difference between the outside temperature and the room temperature in the.first column; divide the proportionate heat loss opposite this amount,